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""".. _models: | |
Models | |
========= | |
TextAttack can attack any model that takes a list of strings as input and outputs a list of predictions. This is the idea behind *model wrappers*: to help your model conform to this API, we've provided the ``textattack.models.wrappers.ModelWrapper`` abstract class. | |
We've also provided implementations of model wrappers for common patterns in some popular machine learning frameworks: | |
Models User-specified | |
-------------------------- | |
TextAttack allows users to provide their own models for testing. Models can be loaded in three ways: | |
1. ``--model`` for pre-trained models and models trained with TextAttack | |
2. ``--model-from-huggingface`` which will attempt to load any model from the ``HuggingFace model hub <https://huggingface.co/models>`` | |
3. ``--model-from-file`` which will dynamically load a Python file and look for the ``model`` variable | |
Models Pre-trained | |
-------------------------- | |
TextAttack also provides lots of pre-trained models for common tasks. Testing different attacks on the same model ensures attack comparisons are fair. | |
Any of these models can be provided to ``textattack attack`` via ``--model``, for example, ``--model bert-base-uncased-mr``. For a full list of pre-trained models, see the `pre-trained models README <https://github.com/QData/TextAttack/tree/master/textattack/models>`_. | |
Model Wrappers | |
-------------------------- | |
TextAttack can attack any model that takes a list of strings as input and outputs a list of predictions. This is the idea behind *model wrappers*: to help your model conform to this API, we've provided the ``textattack.models.wrappers.ModelWrapper`` abstract class. | |
We've also provided implementations of model wrappers for common patterns in some popular machine learning frameworks: including pytorch / sklearn / tensorflow. | |
""" | |
from . import helpers | |
from . import tokenizers | |
from . import wrappers | |